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膜硬度是大肠杆菌 MscS 通道机械敏感性的关键决定因素之一。

Membrane stiffness is one of the key determinants of E. coli MscS channel mechanosensitivity.

机构信息

Victor Chang Cardiac Research Institute, Lowy Packer Building, 405 Liverpool St., Darlinghurst, NSW 2010, Australia.

Victor Chang Cardiac Research Institute, Lowy Packer Building, 405 Liverpool St., Darlinghurst, NSW 2010, Australia; St Vincent's Clinical School, University of New South Wales, Darlinghurst, NSW 2010, Australia.

出版信息

Biochim Biophys Acta Biomembr. 2020 May 1;1862(5):183203. doi: 10.1016/j.bbamem.2020.183203. Epub 2020 Jan 22.

Abstract

Mechanosensitive (MS) channels have an intimate relationship with membrane lipids that underlie their mechanosensitivity. Membrane lipids may influence channel activity by directly interacting with MS channels or by influencing the global properties of the membrane such as elastic area expansion modulus or bending rigidity. Previous work has implicated membrane stiffness as a potential determinant of the mechanosensitivity of E. coli (Ec)MscS. Here we systematically tested this hypothesis using patch fluorometry of azolectin liposomes doped with lipids of increasing elastic area expansion modulus. Increasing dioleoylphosphatidylethanolamine (DOPE) content of azolectin liposomes made it more difficult to activate EcMscS by membrane tension (i.e. increased gating threshold). This effect was exacerbated by stiffer forms of phosphatidylethanolamine such as the branched chain lipid diphytanoylphosphoethanolamine (DPhPE) or the fully saturated lipid distearoyl-sn-glycero-3-phosphoethanolamine (DSPE). Furthermore, a comparison of the branched chain lipid diphytanoylphosphocholine (DPhPC) to the stiffer DPhPE indicated again that it was harder to activate EcMscS in the presence of the stiffer DPhPE. We show that these effects are not due to changes in membrane bending rigidity as the membrane tension threshold of EcMscS in membranes doped with PC18:1 and PC18:3 remained the same, despite a two-fold difference in their bending rigidity. We also show that after prolonged pressure application sudden removal of force in softer membranes caused a rebound reactivation of EcMscS and we discuss the relevance of this phenomenon to bacterial osmoregulation. Collectively, our data suggests that membrane stiffness (elastic area expansion modulus) is one of the key determinants of the mechanosensitivity of EcMscS.

摘要

机械敏感 (MS) 通道与膜脂密切相关,膜脂是其机械敏感性的基础。膜脂可能通过直接与 MS 通道相互作用,或通过影响膜的整体性质,如弹性面积扩张模量或弯曲刚性,来影响通道活性。先前的工作表明,膜刚性可能是大肠杆菌 (Ec)MscS 机械敏感性的一个潜在决定因素。在这里,我们使用含有不同弹性面积扩张模量脂质的藻朊酸盐脂质体的膜片钳荧光法系统地测试了这一假设。增加藻朊酸盐脂质体中二油酰基磷脂酰乙醇胺 (DOPE) 的含量,使通过膜张力激活 EcMscS 变得更加困难(即增加了门控阈值)。这种效应在更硬形式的磷脂乙醇胺(如支链脂质二植烷酰基磷脂酰乙醇胺 (DPhPE) 或全饱和脂质二硬脂酰基-sn-甘油-3-磷酸乙醇胺 (DSPE))的情况下更加严重。此外,将支链脂质二植烷酰基磷酸胆碱 (DPhPC) 与更硬的 DPhPE 进行比较,再次表明在存在更硬的 DPhPE 的情况下,激活 EcMscS 更加困难。我们表明,这些效应不是由于膜弯曲刚性的变化引起的,因为在掺杂有 PC18:1 和 PC18:3 的膜中 EcMscS 的膜张力阈值保持不变,尽管它们的弯曲刚性相差两倍。我们还表明,在长时间施加压力后,在较软的膜中突然去除力会导致 EcMscS 的反弹再激活,我们讨论了这种现象与细菌渗透压调节的相关性。总的来说,我们的数据表明,膜刚性(弹性面积扩张模量)是 EcMscS 机械敏感性的关键决定因素之一。

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